This application relates to the field of vehicles, and in particular, to a powertrain and an electric vehicle.
A solution of integration (referred to as a powertrain) of a motor, a reducer, and a motor control unit (MCU) is adopted for a power drive system of an electric vehicle, to make the structure more compact and the weight lighter. In addition, in the powertrain, the inside of the motor is cooled by oil, the heated oil is cooled by a heat exchanger, and a component such as a power device in the MCU is cooled by a liquid cooling cold plate.
In the existing powertrain, the heat exchanger is externally disposed on a housing of the motor, hot oil in the motor is introduced into an internal circulation channel of the heat exchanger, cold water is introduced into an external circulation channel, and the oil exchanges heat with the water for cooling. The heat exchanger cools the oil in the motor alone, and an external cooling surface of the heat exchanger is exposed to the air, and is not fully used. In addition, the entire powertrain is not compact in structure and occupies relatively large space.
To overcome the foregoing problems existing in a conventional technology, this application provides a powertrain and an electric vehicle, so that an external cooling surface of a heat exchanger can be fully used to improve utilization efficiency of the heat exchanger and heat dissipation of a motor control unit, a structure is more compact, and space is saved.
Therefore, the following technical solutions are used in embodiments of this application:
According to a first aspect, an embodiment of this application provides a powertrain, including: a motor control unit including a housing and a first functional unit disposed in the housing and capable of generating heat during operation; and a heat exchanger disposed in the housing, where the heat exchanger includes a first circulation channel for a first cooling medium to circulate and a second circulation channel for a second cooling medium to circulate, where the first circulation channel has a first external cooling surface, and the first circulation channel conducts heat with the first functional unit at the first external cooling surface; and/or the first circulation channel has a second external cooling surface, and the first circulation channel conducts heat with an inner surface of the housing at the second external cooling surface.
Optionally, a first heat conduction interface material is disposed between the first external cooling surface and the first functional unit; and/or a second heat conduction interface material is disposed between the second external cooling surface and the inner surface of the housing.
Optionally, the motor control unit further includes a second functional unit disposed in the housing, the powertrain further includes a radiator disposed in the housing, and the radiator conducts heat with the second functional unit and the first functional unit.
Optionally, the second functional unit is a power module and includes at least one of a MOSFET, a GTO, and an IGBT.
Optionally, a third heat conduction interface material is disposed between the radiator and the second functional unit; and/or a fourth heat conduction interface material is disposed between the radiator and the first functional unit.
Optionally, the first functional unit is disposed between the heat exchanger and the radiator; or the radiator is disposed between the heat exchanger and the first functional unit, and a part of the radiator conducts heat with the first external cooling surface.
Optionally, the first circulation channel is provided with a first outlet and a first inlet, the second circulation channel is provided with a third outlet and a third inlet, and the first outlet, the first inlet, the third outlet, and the third inlet extend out of the housing; and the radiator is provided with a second outlet and a second inlet, and the second outlet and the second inlet extend out of the housing.
Optionally, a pipeline of the radiator communicates with the first circulation channel, the second circulation channel is provided with a third outlet and a third inlet, the first circulation channel is provided with a fourth outlet, the radiator is provided with a fourth inlet, and the fourth outlet, the fourth inlet, the third outlet, and the third inlet extend out of the housing.
Optionally, the radiator and the heat exchanger are integrally made.
Optionally, the radiator includes a first cooling fin and a second cooling fin that are spaced and connected to each other, and the second functional unit is disposed between the first cooling fin and the second cooling fin.
Optionally, the first functional unit includes a bus capacitor.
According to a second aspect, an embodiment of this application provides an electric vehicle including the powertrain according to the first aspect.
In the foregoing technical solution, because the heat exchanger is disposed in the housing of the motor control unit, and the first circulation channel of the heat exchanger for the cooling medium to circulate has the first external cooling surface and/or the second external cooling surface, so that the first external cooling surface can be in heat conduction and contact with the first functional unit to cool the first functional unit, and the second external cooling surface can be in heat conduction and contact with the inner surface of the housing to cool the housing. Compared with a solution in which an oil-water heat exchanger is externally disposed on a motor housing, the foregoing solution of this application in which the heat exchanger is integrated into the motor control unit (that is, the heat exchanger is disposed in the housing of the motor control unit) enables the external cooling surface of the heat exchanger to be fully used to improve utilization efficiency of the heat exchanger and heat dissipation of the motor control unit, a structure is more compact, and space is saved.
Other features and advantages of this application are described in detail in the subsequent part of description of embodiments.
The following briefly describes the accompanying drawings used to describe embodiments or the conventional technology.
The following describes the technical solutions in embodiments of this application with reference to accompanying drawings in embodiments of this application.
In descriptions of this application, locations or location relationships indicated by terms “center”, “up”, “down”, “in front of”, “behind”, “left”, “right”, “vertical”, “horizontal”, “top”, “bottom”, “inside”, “outside”, and the like are based on locations or location relationships shown in the accompanying drawings, and are merely intended for ease of describing this application and simplifying descriptions, instead of indicating or implying that a mentioned apparatus or component needs to be provided on a specific location or constructed and operated on a specific location, and therefore shall not be understood as limitations on this application.
In the descriptions of this application, it should be noted that, unless otherwise clearly specified and limited, terms “mount”, “link”, and “connect” should be understood in a broad sense, for example, may mean a fixed connection, may be a detachable connection, or may be a butt joint connection or an integrated connection. Persons of ordinary skill in the art can understand specific meanings of the foregoing terms in this application based on specific cases.
In the descriptions of this specification, the described specific features, structures, materials, or characteristics may be combined in a proper manner in any one or more of embodiments or examples.
It may be understood that the first circulation channel 21 may have both the first external cooling surface P1 and the second external cooling surface P2. For example, in
In the foregoing technical solution, the heat exchanger 2 is disposed in the housing 11 of the motor control unit 1, and the first circulation channel 21 of the heat exchanger 2 for the cooling medium to circulate has the first external cooling surface P1 and/or the second external cooling surface P2, so that the first external cooling surface P1 can be in heat conduction and contact with the first functional unit 12 to cool the first functional unit 12, and the second external cooling surface P2 can be in heat conduction and contact with the inner surface of the housing 11 to cool the housing 11. Compared with a solution in which an oil-water heat exchanger is externally disposed on a motor housing, the foregoing solution of this application in which the heat exchanger is integrated into the motor control unit (that is, the heat exchanger is disposed in the housing of the motor control unit) enables the external cooling surface of the heat exchanger to be fully used to improve utilization efficiency of the heat exchanger and heat dissipation of the motor control unit, a structure is more compact, and space is saved.
Still refer to
In addition, the motor control unit 1 further includes a second functional unit 13 disposed in the housing 11. The second functional unit 13 may be a power module, such as an insulated gate bipolar transistor (IGBT), a metal-oxide-semiconductor field-effect transistor (MOSFET), or a gate turn-off thyristor (GTO).
The powertrain further includes a radiator 3 disposed in the housing 11, and the radiator 3 is in heat conduction and contact with the second functional unit 13 and the first functional unit 12. A path indicated by a solid arrow in the radiator 3 is a flow path of a cooling medium. It should be noted that the first functional unit 12 may be a device other than the second functional unit. Optionally, the first functional unit 12 includes a bus capacitor.
In this case, the radiator 3 cools the second functional unit 13 and the first functional unit 12 (such as a capacitor) in the motor control unit 1 by using a cooling medium (such as water) to lower temperatures of the second functional unit 13 and the first functional unit 12. The heat exchanger 2 exchanges heat with and cools the oil in the motor by using the cooling water in the first circulation channel 21. In addition, the first external cooling surface P1 of the first circulation channel 21 of the heat exchanger 2 may cool and dissipate heat of the first functional unit 12 in the housing 11 of the motor control unit 1, and the second external cooling surface P2 of the first circulation channel 21 of the heat exchanger 2 may dissipate heat of the housing 11 of the motor control unit 1, thereby improving utilization efficiency of the heat exchanger 2, improving heat dissipation of the motor control unit 1, and lowering an internal ambient temperature of the motor control unit 1. In addition, integrating the heat exchanger 2 into the motor control unit 1 may further improve an integration degree, make the structure more compact, and save space.
Further, the radiator 3 may include a first cooling fin 31 and a second cooling fin 32 that are spaced and connected to each other, and the second functional unit 13 is disposed between the first cooling fin 31 and the second cooling fin 32. In this way, the first cooling fin 31 and the second cooling fin 32 may better cool and dissipate heat of the second functional unit 13.
To improve an effect of heat conduction between the radiator 3 and the second functional unit 13, a third heat conduction interface material D3 may be disposed between the radiator 3 and the second functional unit 13. Similarly, to improve an effect of heat conduction between the radiator 3 and the first functional unit 12, a fourth heat conduction interface material D4 may be disposed between the radiator 3 and the first functional unit 12.
In addition, in the powertrain of Embodiment 1 shown in
Still refer to
In addition, the powertrain of Embodiment 3 shown in
An embodiment of this application further provides an electric vehicle including the foregoing powertrain. Because the electric vehicle includes the powertrain, the electric vehicle has all or at least some advantages of the powertrain.
Finally, it should be noted that the foregoing embodiments are merely intended for describing the technical solutions of this application, but for limiting this application. Although this application is described in detail with reference to the foregoing embodiments, persons of ordinary skill in the art should understand that they may still make modifications to the technical solutions described in the foregoing embodiments or make equivalent replacements to some technical features thereof, without departing from the scope of the technical solutions of embodiments of this application.
Number | Date | Country | Kind |
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202020579731.7 | Apr 2020 | CN | national |
This application is a continuation of International Application No. PCT/CN2021/071105, filed on Jan. 11, 2021, which claims priority to Chinese Patent Application No. 202020579731.7, filed on Apr. 17, 2020. The disclosures of the aforementioned applications are hereby incorporated by reference in their entireties.
Number | Date | Country | |
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Parent | PCT/CN2021/071105 | Jan 2021 | US |
Child | 17966980 | US |